电阻式传感器矩阵的伪零电位柔性读出电路的评估

Pasindu Lugoda, Júlio C. Costa, A. Pouryazdan, L. García-García, D. Roggen, N. Münzenrieder
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引用次数: 2

摘要

零电位技术是选择性调节无源电阻式传感器阵列的一种有效方法。然而,对于灵活的可穿戴传感器系统,目前使用的放大器是不可取的,因为它们通常基于刚性设备。我们提出了一种利用柔性薄膜跨阻放大器的零电位方法的变化。该集成放大器基于IGZO薄膜晶体管(TFTs),测量截止频率约为4 kHz,足以满足大多数传感应用。为了了解调节传感器网格时的性能,对柔性系统进行了仿真,并与刚性跨阻放大器的结果进行了比较。虽然这些刚性器件导致传感器之间几乎没有串扰,但柔性跨阻放大器保持了近3的选择性因子。同时,全柔性IGZO放大器可以与柔性传感器阵列无缝集成,占地面积仅为1.6 mm2。这种方法可以使易于制造、完全灵活和可穿戴的传感器系统具有最少数量的有源设备,避免有源矩阵结构和单个传感器调节,同时保持一定的灵敏度水平。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of a Pseudo Zero-Potential Flexible Readout Circuit for Resistive Sensor Matrixes
The zero potential technique is an efficient way to selectively condition passive resistive sensor arrays. However, for flexible wearable sensor systems, the currently utilised amplifiers are not desirable as they are normally based on rigid devices. We present a variation of the zero potential approach utilising flexible thin-film transimpedance amplifiers. This integrated amplifier is based on IGZO thin-film transistors (TFTs) and has a measured cut-off frequency of $\approx 4$ kHz, which is sufficient for most sensing applications. To understand the performance when conditioning a grid of sensors, the flexible system was simulated and compared to the results obtained from rigid transimpedance amplifiers. While these rigid devices led to virtually no crosstalk between sensors, the flexible transimpedance amplifier maintained a selectivity factor of nearly 3. At the same time, the fully flexible IGZO amplifier can be seamlessly integrated with a flexible sensor array and has a footprint of only 1.6 mm2. This approach can enable easily manufactureable, fully flexible, and wearable sensor systems with a minimum number of active devices, avoiding active matrix structures and individual sensor conditioning while maintaining a certain level of sensitivity.
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